A reflective element assembly is associated with at least two functional elements, each functional element including at least one functional element electrical contact. The reflective element assembly has a reflective element and reflective element carrier. A power distributor is disposed between the reflective element and the carrier, and includes an integrated heater and power distribution element, a support member having a reverse face and an obverse face, an array of electrically-conductive tracings, and a plurality of discrete electrical contacts points for electrical coupling of the array with the at least two functional elements. At least one of the plurality of discrete electrical contacts points is adapted for electrical communication with at least one functional element electrical contact point of a first functional element, and at least one functional element electrical contact point of a second functional element. The power distributor has a singular module connection.
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1. A reflective element assembly for an exterior rearview mirror system of a vehicle, said reflective element assembly associated with at least two functional elements each including at least one functional element electrical contact, and comprising:
a reflective element having a reverse face and an obverse face, and a reflective element carrier;
a power distributor disposed between said reflective element and said reflective element carrier, said power distributor including
an integrated heater and power distribution element;
a support member having a reverse face and an obverse face;
an array of electrically-conductive tracings; and
a plurality of discrete electrical contacts for electrical coupling of said array of electrically-conductive tracings with said at least two functional elements;
at least one of said plurality of discrete electrical contacts adapted for electrical communication with at least one functional element electrical contact of a first functional element; and
at least one of said plurality of discrete electrical contacts adapted for electrical communication with at least one functional element electrical contact of a second functional element;
wherein said power distributor comprises a singular module connection.
20. A reflective element assembly for an exterior rearview mirror system of a vehicle, said reflective element assembly associated with at least two functional elements each including at least one functional element electrical contact, and comprising:
a reflective element having a reverse face and an obverse face, and a reflective element carrier;
a power distributor disposed between said reflective element and said reflective element carrier, said power distributor including
an integrated heater and power distribution element;
a support member having a reverse face and an obverse face;
an array of electrically-conductive tracings; and
a plurality of discrete electrical contacts for electrical coupling of said array of electrically-conductive tracings with said at least two functional elements;
at least one of said plurality of discrete electrical contacts adapted for electrical communication with at least one functional element electrical contact of a first functional element; and
at least one of said plurality of discrete electrical contacts adapted for electrical communication with at least one functional element electrical contact of a second functional element;
wherein said power distributor comprises a power supply harness interconnected with said support member;
wherein said array of electrically-conductive tracings is carried at said obverse face of said support member of said power distributor; and
wherein said power supply harness couples through said support element with said array of electrically-conductive tracings carried at said obverse face of said support member of said power distributor.
26. A reflective element assembly for an exterior rearview mirror system of a vehicle, said reflective element assembly associated with at least two functional elements each including at least one functional element electrical contact, and comprising:
an electrochromic reflective element having a reverse face and an obverse face, and a reflective element carrier;
a power distributor disposed between said electrochromic reflective element and said reflective element carrier, said power distributor including
an integrated heater and power distribution element;
a support member having a reverse face and an obverse face;
an array of electrically-conductive tracings; and
a plurality of discrete electrical contacts for electrical coupling of said array of electrically-conductive tracings with said at least two functional elements;
wherein said array of electrically-conductive tracings comprises heater tracings;
at least one of said plurality of discrete electrical contacts adapted for electrical communication with at least one functional element electrical contact of a first functional element;
at least one of said plurality of discrete electrical contacts adapted for electrical communication with at least one functional element electrical contact of a second functional element, said second functional element comprising said electrochromic reflective element;
wherein at least one of (a) said power distributor comprises a power supply harness interconnected with said support member, (b) said array of electrically-conductive tracings is carried at said obverse face of said support member of said power distributor, (c) said array of electrically-conductive tracings is carried at said obverse face of said support member of said power distributor and a power supply harness couples through said support element with said array of electrically-conductive tracings carried at said obverse face of said support member of said power distributor, (d) said array of electrically-conductive tracings is carried at said obverse face of said support member of said power distributor and coupling is made through said support element with said array of electrically-conductive tracings carried at said obverse face of said support member of said power distributor, and (e) said array of electrically-conductive tracings is carried at said obverse face of said support member of said power distributor and coupling is made through said support element with said array of electrically-conductive tracings carried at said obverse face of said support member of said power distributor to a singular module connection.
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This application is a continuation of U.S. application Ser. No. 11/779,047, filed Jul. 17, 2007, now U.S. Pat. No. 7,858,905, issued Dec. 28, 2010, which is a continuation of U.S. application Ser. No. 10/711,349, filed Sep. 13, 2004, now U.S. Pat. No. 7,244,912, issued Jul. 17, 2007, which claims the benefit of U.S. provisional application Ser. No. 60/481,360, filed Sep. 11, 2003, each of which is incorporated herein by reference in their entirety.
1. Field of the Invention
The invention relates to a vehicular rearview mirror system. In one aspect, the invention relates to a modular heating and power supply panel for providing power to a rearview mirror system incorporating several powered functions.
2. Description of the Related Art
Externally-mounted rearview mirror assemblies are ubiquitous for contemporary motor vehicles. Such mirror assemblies have long been used to aid the driver in operating the vehicle, especially in improving the driver's rearward view. Contemporary rearview mirror assemblies increasingly incorporate enhanced functionality in addition to image reflection, such as turn signal indicators, automatic dimming capabilities, and heating/defogging elements.
The functional elements, e.g. turn signals and heating/defogging elements, incorporated into the mirror assembly are typically powered and controlled by the vehicle's power supply and control systems. This necessitates separate power and control feeds to each functional element, which typically comprise separate wire harnesses. As well, each functional element typically comprises a distinct structural component which must be assembled into the finished mirror assembly. Assembly of the various functional elements and their associated power and control feeds can thus be complicated, particularly as the number and complexity of the functional elements increases. It is frequently necessary to simultaneously assemble several components into the mirror assembly, while ensuring that the components are in the proper positional relationship, and their power and control feeds are properly interconnected. Improper assembly of the components can result in a mirror assembly that does not perform properly. Difficulty with achieving proper assembly, and the frequency of defective assemblies, contribute to an increase in the cost of such mirror assemblies.
A reflective element assembly for a vehicle exterior rearview mirror system comprises a reflective element having a reverse face and an obverse face, and a reflective element carrier. A power distributor disposed between the reflective element and reflective element carrier includes an integrated heater/power supply, a support member having a reverse face and an obverse face, an array of electrically-conductive tracings, and a plurality of discrete contact points for electrical coupling of the array with at least two functional elements. At least one of the plurality of discrete contact points is adapted for electrical communication with at least one functional contact point of a first functional element. At least one of the plurality of discrete contact points is adapted for electrical communication with at least one functional contact point of a second functional element. The power distributor comprises a singular module connection.
In the drawings:
Referring now to
Referring also to
As shown in the drawings the reflective element 22 can be provided with an optical region 30′ through which light emitted from the turn signal element 30 can be displayed, typically to drivers located rearwardly of the vehicle on which the mirror system described herein is mounted. The optical region 30′ can be any known light-transmitting region such as a transparent area, a translucent area, whether covered by a filter, optical mask and the like. It will also be understood that the optical region 30′ can simply be an area on the reflective element 22 through which light from the turn signal element 30′ emanates.
The turn signal element 30 is also provided with a turn signal power contact point 50 and a turn signal common contact point 52. The contact points 50, 52 are adapted for electrical connection with a positive terminal and a negative terminal of a power supply for activation of the turn signal element 30.
The reflective element 22 is provided with an electrochromic power contact point 54 and an electrochromic common contact point 56 attached to the reverse face 66 and adapted to energize an electrochromic mirror dimming feature incorporated into the reflective element 22.
The power distributor 32 comprising the integrated heater pad/power supply array comprises a planar support member 33 having a reverse face 62 and an obverse face 64. An array 36 of electrically-conductive tracings is carried on the obverse face 64 and comprises a plurality of discrete contact points for electrical connection of the array 36 with selected functional elements associated with the reflective element assembly 21, such as the turn signal element or the electrochromic mirror dimming element. Electrical power is provided to the power distributor 32 through a power supply harness 26 suitably interconnected with the support member 33. The power supply harness 26 preferably carries a single positive electrical power lead for electrical communication with a positive power portion of the array 36, and a single common power lead or grounded lead for electrical communication with a common portion of the array 36 in order to provide required power to the circuits comprising the selected functional elements, such as the turn signal element, the electrochromic mirror dimming element, and the heater element described herein.
As indicated previously herein, the power distributor 32 is illustrated as configured to incorporate a heater pad. However, other embodiments can be configured wherein the power distributor 32 does not include a heater pad (such as, for example, where the mirror system is not to be provided with a heater pad), and the power distribution is accomplished with the incorporation of a different functionality, such as electrochromic dimming, or a power distributor incorporating a pair of electrical contact bars only. Preferably, the power distributor 32 is configured for power distribution over a relatively large area of the support member 33 so that the electrical contact points along the power distributor 32 for the different functionalities are located at those functionalities and are not concentrated in a relatively limited area of the support member 33. A heater pad provides an effective integration of such a distributed power supply and functionality.
As shown specifically in
The module connection 29 is divided into a common lead 38 electrically connected to a turn signal common lead 43, an electrochromic common lead 45, and a heater common lead 49, and a power lead 39 electrically connected to a turn signal power lead 40, an electrochromic power lead 41, and a heater power lead 47. Electrically connected to the heater common lead 49 and the heater power lead 47 is a well-known heater tracing 36 incorporated into the obverse face 64 and adapted for defrosting and defogging the reflective element 22 when the integrated heater pad/power supply array 32 and the reflective element 22 are brought into operable communication.
The turn signal common lead 43 feeds a turn signal tracing 43 which terminates in a turn signal common contact 44, and an electrochromic common lead 45 terminates in an electrochromic common contact 48. Similarly, the turn signal power lead 40 feeds a turn signal power tracing 40 which terminates in a turn signal power contact 42. An electrochromic power lead 41 terminates in an electrochromic power contact 46.
The turn signal common contact 44 is adapted for electrical communication with the turn signal common contact point 52, and the turn signal power contact 42 is adapted for electrical communication with the turn signal power contact point 50. The electrochromic common contact 48 is adapted for electrical communication with the electrochromic common contact point 56, and the electrochromic power contact 46 is adapted for electrical communication with the electrochromic power contact point 54.
When the power distributor 32 is brought into aligned contact with the reflective element 22, the electrochromic common contact 48 will be brought into electrical communication with the electrochromic common contact point 56, and the electrochromic power contact 46 will be brought into electrical communication with the electrochromic power contact point 54, thereby providing power to the electrochromic mirror dimming element.
Similarly, the turn signal common contact 44 will be brought into electrical communication with the turn signal common contact point 52, and the turn signal power contact 42 will be brought into electrical communication with the turn signal power contact point 50, thereby providing electrical power to the turn signal element 30. Of course, the turn signal element 30 is brought into alignment with the optical region 30′ on the reflective element during the mounting of these components to one another as well.
The reflective element carrier 20 comprises a generally conventional reflective element carrier adapted to mount the reflective element assembly 21, provided with a power supply harness slot 58 aligned for mating cooperation with the power supply harness 26 so that, when the reflective element assembly 21 is mounted to the reflective element carrier 20, the power supply harness 26 can be inserted through the power supply harness slot 58 to be connected to the wire harness 24. As shown in
The improved reflective element assembly described herein facilitates the assembly of the rearview mirror system by eliminating the multiple wire harnesses and plug-type connectors necessitated by the prior art assemblies to accommodate each functional element incorporated into the rearview mirror system. The heater pad, electrochromic dimming element, turn signal element, and other functional elements in the rearview mirror system can be readily integrated and interconnected with the primary wire harness to the rearview mirror system through a single plug connection which can be readily installed during assembly of the rearview mirror. The improved assembly will provide cost savings in reduced assembly time, and reduced misassembly of the complex prior art mirror system.
While the invention has been specifically described in connection with certain specific embodiments thereof, it is to be understood that this is by way of illustration and not of limitation. Reasonable variation and modification are possible within the scope of the foregoing description and drawings without departing from the spirit of the invention.
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Dec 28 2010 | MAGNA MIRRORS OF AMERICA, INC. | (assignment on the face of the patent) | / | |||
Apr 01 2011 | RAWLINGS, DON S | Magna Mirrors of America, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 026069 | /0236 |
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